DocumentCode :
2208463
Title :
Discrete-time domain poles zeros identification using back propagation neural networks
Author :
Chow, T.W.S. ; Yam, Y.F.
Author_Institution :
City Polytech. of Hong Kong, Hong Kong
fYear :
1991
fDate :
2-6 Sep 1991
Firstpage :
215
Lastpage :
218
Abstract :
Describes a back propagation neural network applying to poles zeros identification in discrete time domain. Traditional recursive least squares (RLS) algorithm is time consuming and sensitive to noise. Neural networks possess massive parallel processing capability and noise immunity, the time and noise constraints can be eliminated. The results are encouraging and demonstrate that neural networks offer new promising directions towards solving system identification problems radically
Keywords :
identification; neural nets; poles and zeros; time-domain analysis; back propagation neural networks; discrete time domain; massive parallel processing; noise immunity; poles zeros identification; system identification;
fLanguage :
English
Publisher :
iet
Conference_Titel :
Digital Processing of Signals in Communications, 1991., Sixth International Conference on
Conference_Location :
Loughborough
Print_ISBN :
0-85296-522-2
Type :
conf
Filename :
151931
Link To Document :
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